广西师范大学学报(自然科学版) ›› 2026, Vol. 44 ›› Issue (5): 224-234.doi: 10.16088/j.issn.1001-6600.2025092801

• 农业科学 • 上一篇    下一篇

激活蛋白PeFOC1对胁迫条件下红花种子萌发及生长的影响

杨涵1, 董乐1, 周丹宁1, 田静蕊1, 张文龙3, 朱畇昊1,2*   

  1. 1.河南中医药大学 药学院, 河南 郑州 450046;
    2.呼吸疾病中医药防治省部共建协同创新中心(河南中医药大学), 河南 郑州 450046;
    3.遂平侨基肥业有限公司, 河南 驻马店 463100
  • 收稿日期:2025-09-28 修回日期:2025-11-09 出版日期:2026-09-05 发布日期:2026-07-24
  • 通讯作者: 朱畇昊(1986—),男,河南郑州人,河南中医药大学副教授,博士。E-mail: guxinhan123@163.com
  • 基金资助:
    河南省自然科学基金(252300420130);国家自然科学基金(81603232)

Modulation of safflower seed germination and seedlinggrowth by activator protein PeFOC1 under stress conditions

Yang Han1, Dong Le1, Zhou Danning1, Tian Jingrui1, Zhang Wenlong3, Zhu Yunhao1,2*   

  1. 1. College of Pharmacy, Henan University of Chinese Medicine, Zhengzhou Henan 450046, China;
    2. Collaborative Innovation Center for Chinese Medicine and Respiratoty Diseases Co-constructed by Henan Province & Ministry of Education of P. R. China (HenanUniversity of Chinese Medicine), Zhengzhou Henan 450046, China;
    3. Suiping Qiaoji Fertilizer Co., Ltd., Zhumadian Henan 463100, China
  • Received:2025-09-28 Revised:2025-11-09 Online:2026-09-05 Published:2026-07-24

摘要: 为探究尖孢镰刀菌来源的激活蛋白PeFOC1对盐胁迫与干旱胁迫下红花种子萌发及幼苗生长的调控作用,本文分别采用250 mmol/L NaCl和10% PEG-6000模拟盐胁迫与干旱胁迫条件。实验设置0.1 mg/L (P1)、1 mg/L (P2)、10 mg/L (P3) PeFOC1处理组及对照组(CK),分析其对种子发芽势、发芽指数及幼苗生长指标(株高、根长、茎粗、鲜质量、干质量)的影响,并利用qRT-PCR检测关键免疫基因CtNPR、CtEDS1的表达水平。结果表明,与对照组相比,经1 mg/L PeFOC1 (P2)处理后,红花种子在盐胁迫和干旱胁迫下的发芽势分别显著提高37.15%和61.54%;同时,P2处理显著促进幼苗根系生长,盐胁迫下根干质量增幅超148%。免疫基因表达分析显示,盐胁迫下10 mg/L PeFOC1对CtNPR和CtEDS1的上调作用最显著(相对表达量分别达CK的3.43和7.7倍);而干旱胁迫下,1 mg/L PeFOC1可特异性诱导CtNPR和CtEDS1高表达(相对表达量分别达CK的8.7和5.37倍)。本文研究表明,PeFOC1通过胁迫类型依赖的浓度调控策略,协同调控红花种子萌发、幼苗生理适应性及免疫响应,为红花抗逆栽培及生物抗逆剂的研发提供新思路与理论依据。

关键词: 红花, 胁迫, 种子萌发, 免疫响应, PeFOC1

Abstract: To investigate the regulatory effects of the activator protein PeFOC1 derived from Fusarium oxysporum on safflower seed germination and seedling growth under salt and drought stress, 250 mmol/L NaCl and 10% PEG-6000 were used to simulate salt stress and drought stress conditions, respectively. Treatments included0.1 mg/L (P1), 1 mg/L (P2), and 10 mg/L (P3) of PeFOC1, along with a control group (CK). Parameters such as germination potential, germination index, and seedling growth traits (plant height, root length, stem diameter, fresh weight, and dry weight) were analyzed. The expression of key immune-related genes (CtNPR, CtEDS1) were detected via qRT-PCR. The results demonstrated that comparedwith the untreated stress control group, treatment with 1 mg/LPeFOC1 (P2) significantly enhanced the seed germination potential under both salt and drought stress conditions, with increases of 37.15% and 61.54%, respectively. Meanwhile, P2 treatment markedly promoted root growth, with the root dry weight increasing bymore than 148% under salt stress. Analysis of immune gene expression revealed that under salt stress, 10 mg/L PeFOC1 most significantly up-regulated CtNPR and CtEDS1 (reaching 3.43-fold and 7.7-fold of CK, respectively). In contrast, under drought stress, 1 mg/LPeFOC1 specifically induced high expression of CtNPR and CtEDS1 (reaching 8.7-fold and 5.37-fold of CK, respectively). These findings demonstrate that PeFOC1 coordinately regulates safflower seed germination, seedling physiological adaptation, and immune response through a stress type-dependent concentration strategy, providing new insights and a theoretical basis for stress-resistant cultivation of safflower and the development of biological anti-stress agents.

Key words: Safflower (Carthamus tinctorius L.), abiotic stress, seed germination, immune response, PeFOC1

中图分类号:  S567.219;Q945.78

[1] Zhang H M, Zhu J H, Gong Z Z, et al. Abiotic stress responses in plants[J]. Nature Reviews Genetics, 2022, 23(2): 104-119. DOI: 10.1038/s41576-021-00413-0.
[2] Yuan M H, Jiang Z Y, Bi G Z, et al. Pattern-recognition receptors are required for NLR-mediated plant immunity[J]. Nature, 2021, 592(7852): 105-109. DOI: 10.1038/s41586-021-03316-6.
[3] Wang Y, Tyler B M, Wang Y C. Defense and counterdefense during plant-pathogenic oomycete infection[J]. Annual Review of Microbiology, 2019, 73: 667-696. DOI: 10.1146/annurev-micro-020518-120022.
[4] Li S W, Nie H Z, Qiu D W, et al. A novel protein elicitor PeFOC1 from Fusarium oxysporum triggers defense response and systemic resistance in tobacco[J]. Biochemical and Biophysical Research Communications, 2019, 514(4): 1074-1080. DOI: 10.1016/j.bbrc.2019.05.018.
[5] 杨宇, 黄兴琳, 江忠敏, 等. 中药红花化学成分与药理作用研究新进展[J]. 中华中医药学刊, 2023, 41(10): 119-126. DOI: 10.13193/j.issn.1673-7717.2023.10.024.
[6] 赵作章, 陈劲松, 彭尔瑞, 等. 土壤盐渍化及治理研究进展[J]. 中国农村水利水电, 2023(6): 202-208.
[7] 赵琴, 陈红芝. NaCl胁迫对红花种子萌发特性的影响[J]. 生物资源, 2024, 46(6): 575-581. DOI: 10.14188/j.ajsh.20240428001.
[8] Zafari M. Safflower (Carthamus tinctorius L.) seed germination, seedling growth and biochemical properties affected by drought stress, genotype and 24-epibrassinosteroid[J]. Journal of Plant Nutrition, 2024, 47(14): 2197-2206. DOI: 10.1080/01904167.2024.2338740.
[9] Du Jardin P. Plant biostimulants: definition, concept, main categories and regulation[J]. Scientia Horticulturae, 2015, 196: 3-14. DOI: 10.1016/j.scienta.2015.09.021.
[10] 刘艳潇, 祝一鸣, 周而勋. 植物免疫诱抗剂的作用机理和应用研究进展[J]. 分子植物育种, 2020, 18(3): 1020-1026. DOI: 10.13271/j.mpb.018.001020.
[11] Zhu X Y, Wang T, Tariq H, et al. Plant immunity inducer-enhanced volatiles in rice: boosting indirect defense against striped stem borers through parasitoid attraction[J]. Journal of Agricultural and Food Chemistry, 2025, 73(26): 16408-16419. DOI: 10.1021/acs.jafc.5c05057.
[12] Fiodor A, Ajijah N, Dziewit L, et al. Biopriming of seed with plant growth-promoting bacteria for improved germination and seedling growth[J]. Frontiers in Microbiology, 2023, 14: 1142966. DOI: 10.3389/fmicb.2023.1142966.
[13] Cardarelli M, Woo S L, Rouphael Y, et al. Seed treatments with microorganisms can have a biostimulant effect by influencing germination and seedling growth of crops[J]. Plants, 2022, 11(3): 259. DOI: 10.3390/plants11030259.
[14] M S A, Sridharan K, Puthur J T, et al. Priming with nanoscale materials for boosting abiotic stress tolerance in crop plants[J]. Journal of Agricultural and Food Chemistry, 2021, 69(35): 10017-10035. DOI: 10.1021/acs.jafc.1c03673.
[15] Rhaman M S, Imran S, Rauf F, et al. Seed priming with phytohormones: an effective approach for the mitigation of abiotic stress[J]. Plants, 2021, 10(1): 37. DOI: 10.3390/plants10010037.
[16] Ibrahim E A. Seed priming to alleviate salinity stress in germinating seeds[J]. Journal of Plant Physiology, 2016, 192: 38-46. DOI: 10.1016/j.jplph.2015.12.011.
[17] Paul S, Dey S, Kundu R. Seed priming: an emerging tool towards sustainable agriculture[J]. Plant Growth Regulation, 2022, 97(2): 215-234. DOI: 10.1007/s10725-021-00761-1.
[18] Singh V P, Kumar J, Singh M, et al. Role of salicylic acid-seed priming in the regulation of chromium (VI) and UV-B toxicity in maize seedlings[J]. Plant Growth Regulation, 2016, 78(1): 79-91. DOI: 10.1007/s10725-015-0076-4.
[19] Ghaffari M R, Mirzaei M, Ghabooli M, et al. Root endophytic fungus Piriformospora indica improves drought stress adaptation in barley by metabolic and proteomic reprogramming[J]. Environmental and Experimental Botany, 2019, 157: 197-210. DOI: 10.1016/j.envexpbot.2018.10.002.
[20] 陈敏, 栾炳辉, 王洪涛, 等. 植物免疫诱抗剂对玉米耐盐性及产量的影响[J]. 作物研究, 2024, 38(1): 16-19.
[21] Song W Y, Shao H B, Zheng A Z, et al. Advances in roles of salicylic acid in plant tolerance responses to biotic and abiotic stresses[J]. Plants, 2023, 12(19): 3475. DOI: 10.3390/plants12193475.
[22] Lutts S, Benincasa P, Wojtyla L, et al. Seed priming: new comprehensive approaches for an old empirical technique[M]//Araújo S, Balestrazzi A. New challenges in seed biology-basic and translational research driving seed technology.Rijeka: InTech, 2016. DOI: 10.5772/64420.
[23] Mickky B M. Seed priming as a strategy to improve wheat productivity under abiotic stress: global meta-analysis[J]. Journal of Plant Growth Regulation, 2022, 41(4): 1397-1410. DOI: 10.1007/s00344-021-10403-5.
[24] Farooq M A, Ma W, Shen S X, et al. Underlying biochemical and molecular mechanisms for seed germination[J]. International Journal of Molecular Sciences, 2022, 23(15): 8502. DOI: 10.3390/ijms23158502.
[25] De Medeiros R L S, De Paula R C, De Souza J V O, et al. Abiotic stress on seed germination and plant growth of Zeyheria tuberculosa[J]. Journal of Forestry Research, 2023, 34(5): 1511-1522. DOI: 10.1007/s11676-023-01608-3.
[26] Manghwar H, Zaman W. Plant biotic and abiotic stresses[J]. Life, 2024, 14(3): 372. DOI: 10.3390/life14030372.
[27] Imtiaz H, Shiraz M, Mir A R, et al. Nano-priming techniques for plant physio-biochemistry and stress tolerance[J]. Journal of Plant Growth Regulation, 2023, 42(11): 6870-6890. DOI: 10.1007/s00344-023-10981-6.
[28] Do Espirito S P A, CaixetaO H, Fernandes F L, et al. Nanotechnology potential in seed priming for sustainable agriculture[J]. Nanomaterials, 2021, 11(2): 267. DOI: 10.3390/nano11020267.
[1] 杨浩, 刘荣林, 冯一倬, 李婧姝, 汤行昊, 曹世江. 闽楠幼苗对高温干旱复合胁迫的表型变化及其生理响应[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 235-246.
[2] 许祖元, 陈立, 杨宝婷, 冯一倬, 曹光球, 曹世江. 马大杂交相思低温生理响应及耐寒性评价[J]. 广西师范大学学报(自然科学版), 2026, 44(4): 246-256.
[3] 郭胜周, 许祖元, 刘荣林, 林秦民, 曹光球, 曹世江. 杉木ClHSP70基因的克隆及表达模式分析[J]. 广西师范大学学报(自然科学版), 2025, 43(4): 213-223.
[4] 严翻翻, 张永清, 张萌, 合佳敏, 陈薇薇, 景茂雅. 亚硒酸钠对盐碱胁迫下藜麦生长及抗性的影响[J]. 广西师范大学学报(自然科学版), 2025, 43(1): 58-64.
[5] 谢道龙, 邹肖肖, 李美玲, 游昌乔, 周苹, 肖文君, 郭新红. LecRKIII.2基因调控拟南芥对非生物胁迫和外源激素的响应[J]. 广西师范大学学报(自然科学版), 2023, 41(4): 189-199.
[6] 覃盈盈, 漆光超, 梁士楚. 凤眼莲组织浸提液对靖西海菜花种子萌发的影响[J]. 广西师范大学学报(自然科学版), 2018, 36(3): 87-92.
[7] 严娟,李旭,周伟,李明会. 中国鮡科褶鮡属鱼类的分布、习性与资源保护[J]. 广西师范大学学报(自然科学版), 2018, 36(2): 111-117.
[8] 刘慧敏, 官冬杰, 张梦婕. 三峡库区生态安全后续发展胁迫因子及胁迫机理研究[J]. 广西师范大学学报(自然科学版), 2016, 34(3): 150-158.
[9] 宾石玉, 林勇, 曾兰, 张妍, 杜雪松, 唐章生, 张永德, 杨慧赞, 陈忠. 低温胁迫对埃及尼罗罗非鱼肝、脾和鳃细胞形态的影响[J]. 广西师范大学学报(自然科学版), 2015, 33(3): 123-128.
[10] 宾石玉, 曾兰, 杜雪松, 张妍, 林勇, 唐章生, 张永德, 杨慧赞, 陈忠. 低温胁迫对罗非鱼血液生理生化指标的影响[J]. 广西师范大学学报(自然科学版), 2014, 32(4): 120-125.
[11] 唐章生, 卢其西, 林勇, 宾石玉, 彭婷, 钟舒红, 甘西. 不同低温条件下吉富罗非鱼的耐受性研究[J]. 广西师范大学学报(自然科学版), 2012, 30(1): 105-110.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] 唐程华, 易见兵, 吴欣, 熊文武, 王敬永. 跨域少样本图像语义分割方法综述[J]. 广西师范大学学报(自然科学版), 2026, 44(4): 1 -27 .
[2] 田晟, 谢华林, 陈东. 基于改进深度强化学习的燃料电池汽车能量管理策略[J]. 广西师范大学学报(自然科学版), 2026, 44(4): 28 -45 .
[3] 张旭, 刘迪迪. 基于TD3算法的电动汽车智能充/放电调度策略[J]. 广西师范大学学报(自然科学版), 2026, 44(4): 46 -55 .
[4] 闫远洋, 谢丽蓉, 张龙军, 任娟, 黄晨晨, 胡超. 基于多目标优化的超短期风电功率预测模型[J]. 广西师范大学学报(自然科学版), 2026, 44(4): 56 -70 .
[5] 吕辉, 苏静, 熊枫, 张端宇, 常文涵, 王灿, 马辉. 基于改进SAC算法的微网群双层协同优化调度方法[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 1 -15 .
[6] 杨真, 唐悦, 耿兆杰, 殷旭, 黄永. 复合非晶丝GMI生物传感器对cTnI的灵敏检测[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 16 -26 .
[7] 田培一, 蒋品群, 宋树祥, 夏海英, 蔡超波. 多相位时钟控制的高效率快速稳定升压电荷泵[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 27 -37 .
[8] 陈庚, 宋树祥, 蒋品群, 蔡超波. 12 bit 100 MS/s 逐次逼近型模数转换器设计[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 38 -48 .
[9] 索贵东, 陆志敏, 李自立. EMD-YOLO:一种基于改进YOLO11n的PCB缺陷检测模型[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 49 -62 .
[10] 胡志强, 吕晓琪, 谷宇. 基于Mamba增强局部特征提取的皮肤病变分割模型[J]. 广西师范大学学报(自然科学版), 2026, 44(5): 63 -74 .
版权所有 © 广西师范大学学报(自然科学版)编辑部
地址:广西桂林市三里店育才路15号 邮编:541004
电话:0773-5857325 E-mail: gxsdzkb@mailbox.gxnu.edu.cn
本系统由北京玛格泰克科技发展有限公司设计开发